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  4. Multi-scale investigation on mechanical behavior and microstructural alteration of C-S-H in carbonated Alite paste
 
research article

Multi-scale investigation on mechanical behavior and microstructural alteration of C-S-H in carbonated Alite paste

Zhan, Bao Jian
•
Xuan, Dong Xing
•
Poon, Chi Sun
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June 1, 2021
Cement and Concrete Research

Carbonation treatment is a promising option to enhance recycled concrete aggregate (RCA) quality and eventually improve concrete performance. This study investigated the multi-scale mechanical properties of calcium silicate hydrates (C-S-H) in a mature alite paste subjected to accelerated carbonation treatment by testing macro compressive strength, microhardness and nanoindentation. The results show that, carbonation treatment resulted in a heterogeneous distribution of carbonation products in the alite sample. Reinforcement of C-S-H by the randomly precipitated calcite and vaterite crystals prevailed over the nano-structural and compositional alteration of C-S-H induced by carbonation, leading to an increase of nano-indentation modulus at the edge of the sample. Also, the microhardness at the edge zone was markedly higher than that at the core of the carbonated sample. The carbonated peripheral zone with improved nano-scale modulus and microhardness was likely serving as a "hard shell", contributing to the improved macro compressive strength. The new insights into the multi-scale mechanical properties of carbonated C-S-H contribute to further understanding of the enhanced properties of RCA after carbonation treatment.

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Type
research article
DOI
10.1016/j.cemconres.2021.106448
Web of Science ID

WOS:000646027800026

Author(s)
Zhan, Bao Jian
Xuan, Dong Xing
Poon, Chi Sun
Scrivener, Karen L.  
Date Issued

2021-06-01

Publisher

Pergamon-Elsevier Science Ltd

Published in
Cement and Concrete Research
Volume

144

Article Number

106448

Subjects

Construction & Building Technology

•

Materials Science, Multidisciplinary

•

Materials Science

•

carbonation

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c-s-h

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nanoindentation

•

microhardness

•

compressive strength

•

tricalcium silicate

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recycled concrete

•

portland-cement

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elastic-modulus

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co2 uptake

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aggregate

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indentation

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enhancement

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porosity

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hardness

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LMC  
Available on Infoscience
June 19, 2021
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/179075
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